Title :
Evaluation of self-magnetically pinched diodes up to 10 MV as high-resolution flash X-ray sources
Author :
Swanekamp, Stephen B. ; Cooperstein, Gerald ; Schumer, Joseph W. ; Mosher, David ; Young, F.C. ; Ottinger, Paul F. ; Commisso, Robert J.
Author_Institution :
Plasma Phys. Div., Naval Res. Lab., Washington, DC, USA
Abstract :
The merits of several high-resolution, pulsed-power-driven, flash X-ray sources are examined with numerical simulation for voltages up to 10 MV. The charged particle dynamics in these self-magnetically pinched diodes (SMPDs), as well as electron scattering and energy loss in the high-atomic-number target, are treated with the partic by coupling the output from LSP with the two-dimensional component of the integrated tiger series of Monte Carlo electron/photon transport codes, CYLTRAN. The LSP/CYLTRAN model agrees well with angular dose-rate measurements from positive-polarity rod-pinch-diode experiments, where peak voltages ranged from 5.2-6.3 MV. This analysis indicates that, in this voltage range, the dose increases with angle and is a maximum in the direction headed back into the generator. This suggests that high-voltage rod-pinch experiments should be performed in negative polarity to maximize the extracted dose. The benchmarked LSP/CYLTRAN model is then used to examine three attractive negative-polarity diode geometry concepts as possible high-resolution radiography sources for voltages up to 10 MV. For a 2-mm-diameter reentrant rod-pinch diode (RPD), a forward-directed dose of 740 rad(LiF) at 1 m in a 50-ns full-width at half-maximum radiation pulse is predicted. For a 2-mm-diameter nonreentrant RPD, a forward-directed dose of 1270 rad(LiF) is predicted. For both RPDs, the on-axis X-ray spot size is comparable to the rod diameter. A self-similar hydrodynamic model for rod expansion indicates that spot-size growth from hydrodynamic effects should be minimal. For the planar SMPD, a forward-directed dose of 1370 rad(LiF) and a similar X-ray spot size are predicted. These results show that the nonreentrant RPD and the planar SMPD are very attractive candidates for negative-polarity high-resolution X-ray sources for voltages of up to 10 MV.
Keywords :
Monte Carlo methods; fractals; pinch effect; plasma X-ray sources; plasma diodes; plasma simulation; plasma transport processes; 10 MV; 2 mm; 5.2 to 6.3 MV; 50 ns; LSP/CYLTRAN model; Monte Carlo electron-photon transport code; X-ray spot size; angular dose-rate measurements; charged particle dynamics; electron scattering; energy loss; high-atomic number target; high-resolution flash X-ray sources; high-resolution radiography sources; negative-polarity diode geometry; positive-polarity rod-pinch diode; pulsed-power-driven X-ray sources; rod expansion; self-magnetically pinched diodes; self-similar hydrodynamic model; Diodes; Electrons; Energy loss; Hydrodynamics; Monte Carlo methods; Numerical simulation; Particle scattering; Solid modeling; Voltage; X-ray scattering; Bremsstrahlung; Monte Carlo; coupled electron–photon transport; electron beams; flash X-radiography; high-power diodes; ion beams; particle-in-cell;
Journal_Title :
Plasma Science, IEEE Transactions on
DOI :
10.1109/TPS.2004.835956